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Hemocompatibile Thin Films Assessed under Blood Flow Shear Forces

  • Roman Major
  • , Grażyna Wilczek
  • , Justyna Więcek
  • , Maciej Gawlikowski
  • , Hanna Plutecka
  • , Katarzyna Kasperkiewicz
  • , Marcin Kot
  • , Małgorzata Pomorska
  • , Roman Ostrowski
  • , Magdalena Kopernik
  • Polish Academy of Sciences
  • University of Silesia in Katowice
  • Jagiellonian University Medical College
  • AGH University of Krakow
  • Military University of Technology Warsaw

Research output: Contribution to journalArticlepeer-review

4 Citations (Scopus)

Abstract

The aim of this study was to minimize the risk of life-threatening thromboembolism in the ventricle through the use of a new biomimetic heart valve based on metal–polymer composites. Finite volume element simulations of blood adhesion to the material were carried out, encompassing radial flow and the cone and plane test together with determination of the effect of boundary conditions. Both tilt-disc and bicuspid valves do not have optimized blood flow due to their design based on rigid valve materials (leaflet made of pyrolytic carbon). The main objective was the development of materials with specific properties dedicated to contact with blood. Materials were evaluated by dynamic tests using blood, concentrates, and whole human blood. Hemostability tests under hydrodynamic conditions were related to the mechanical properties of thin-film materials obtained from tribological tests. The quality of the coatings was high enough to avoid damage to the coating even as they were exposed up to maximum loading. Analysis towards blood concentrates of the hydrogenated carbon sample and the nitrogen-doped hydrogenated carbon sample revealed that the interaction of the coating with erythrocytes was the strongest. Hemocompatibility evaluation under hydrodynamic conditions confirmed very good properties of the developed coatings.

Original languageEnglish
Article number5696
JournalMolecules
Volume27
Issue number17
DOIs
Publication statusPublished - Sept 2022

Keywords

  • Impact-R
  • blood shear stress
  • blood–material interaction
  • heart valve
  • hemocompatibility
  • nanoindentation
  • radial flow chamber
  • thin coatings

ASJC Scopus subject areas

  • Analytical Chemistry
  • Chemistry (miscellaneous)
  • Molecular Medicine
  • Pharmaceutical Science
  • Drug Discovery
  • Physical and Theoretical Chemistry
  • Organic Chemistry

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